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i can't understand what the error is in this code:

#include <set>
#include <utility>
#include <iostream>

using namespace std;

class A
{
    public:
        A(unsigned int a) : _a(a) { }
        A() : _a(0) { }
        unsigned int a() const { return _a; }
    private:
        unsigned int _a;
};

class B
{
    public:
        B(unsigned int b) : _b(b) { }
        B() : _b(0) { }
        unsigned int b() const { return _b; }
    private:
        unsigned int _b;
};

void display(const Point& point)
{
    //cout << "A: " << point.first.a() << ", B: " << point.second.b() << endl;
}

typedef pair <A, B> Point;
typedef set <Point> List;

main()
{
    A a(5);
    B b(9);

    List list;
    List::iterator it;
    Point point;

    point = make_pair(a, b);

    it = list.begin();

    list.insert(point); // <--- error here

    //display(point);
}

error is this:

In file included from /usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/bits/stl_algobase.h:66,
                 from /usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/bits/stl_tree.h:62,
                 from /usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/set:60,
                 from test.cpp:1:
/usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/bits/stl_pair.h: In function ‘bool std::operator<(const std::pair<_T1, _T2>&, const std::pair<_T1, _T2>&) [with _T1 = A, _T2 = B]’:
/usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/bits/stl_function.h:230:   instantiated from ‘bool std::less<_Tp>::operator()(const _Tp&, const _Tp&) const [with _Tp = std::pair<A, B>]’
/usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/bits/stl_tree.h:1170:   instantiated from ‘std::pair<typename std::_Rb_tree<_Key, _Val, _KeyOfValue, _Compare, _Alloc>::iterator, bool> std::_Rb_tree<_Key, _Val, _KeyOfValue, _Compare, _Alloc>::_M_insert_unique(const _Val&) [with _Key = std::pair<A, B>, _Val = std::pair<A, B>, _KeyOfValue = std::_Identity<std::pair<A, B> >, _Compare = std::less<std::pair<A, B> >, _Alloc = std::allocator<std::pair<A, B> >]’
/usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/bits/stl_set.h:411:   instantiated from ‘std::pair<typename std::_Rb_tree<_Key, _Key, std::_Identity<_Key>, _Compare, typename _Alloc::rebind<_Key>::other>::const_iterator, bool> std::set<_Key, _Compare, _Alloc>::insert(const _Key&) [with _Key = std::pair<A, B>, _Compare = std::less<std::pair<A, B> >, _Alloc = std::allocator<std::pair<A, B> >]’
test.cpp:48:   instantiated from here
/usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/bits/stl_pair.h:154: error: no match for ‘operator<’ in ‘__x->std::pair<A, B>::second < __y->std::pair<A, B>::second’
/usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/bits/stl_pair.h:154: error: no match for ‘operator<’ in ‘__y->std::pair<A, B>::first < __x->std::pair<A, B>::first’
/usr/lib/gcc/x86_64-pc-linux-gnu/4.4.4/include/g++-v4/bits/stl_pair.h:154: error: no match for ‘operator<’ in ‘__x->std::pair<A, B>::first < __y->std::pair<A, B>::first’
share|improve this question
1  
If you want to use a an std::set to hold classes A, B, or a std::pair<A,B>, then your classes must be LessThanComparable: sgi.com/tech/stl/LessThanComparable.html . This is because set is implemented as a red-black tree, which is ordered. –  phooji Mar 11 '11 at 21:55
    
@phooji: you should post that as an answer –  Bill Mar 11 '11 at 22:05
    
@Bill: It was @Matteo Italia's 'find' that the formatting was causing the missing < > (leading to several wrong answers including my own, which is now deleted). Of course Matteo's answer was initially wrong, but then it got corrected. My comment was just to tie things over ;) –  phooji Mar 11 '11 at 22:14

5 Answers 5

pair and set are templates, not classes. You need to do e.g:

typedef pair<A, B> Point;
typedef set<Point> List;

A template becomes a class when you instantiate it, e.g. std::set<int> theset; creates the class set<int> from the class template set.

EDIT: As phooj pointed out, you need both A and B to have a comparison operator, operator<. See Matteo Italia's answer.

share|improve this answer
    
Well played, sir. Outdrew me by a solid half minute :) –  phooji Mar 11 '11 at 21:41
    
The code he posted had the <A, B> in place, but they were removed by Markdown because he used the <pre> tag instead of the usual 4 spaces. The problem is elsewhere. –  Matteo Italia Mar 11 '11 at 21:50
    
@Eric: looks like the actual problem lies in A and B not satisfying the less-than-comparable concept. See my comment to the question. –  phooji Mar 11 '11 at 21:53
    
@phooji: good point. That'll likely be the next question once he's edited his code to match the real code –  Erik Mar 11 '11 at 21:54
    
@Eric: Looks like the templates params were not the problem in the first place -- have a closer look at the compiler error. –  phooji Mar 11 '11 at 21:57

You are trying to use std::set with an element type that does not have ordering (std::pair), while a set needs that its elements have "a specific strict weak ordering criterion".


Update: actually std::pair does provide an operator< (thanks @UncleBens), that is defined in terms of the operator< of its components; so the problem lies in your A and B not providing a comparison operator; you should write an operator< for A and B.

In alternative, since an operator< in general doesn't really make sense for points, you can create a comparison functor for your Points and pass it as the second template argument for std::set.

share|improve this answer
    
@Matteo Italia: Good eye on noticing (I'm guessing) that the compiler error had missing angle brackets :) –  phooji Mar 11 '11 at 22:00
1  
Actually std::pair has ordering. A and B don't. (Read the error messages.) –  UncleBens Mar 11 '11 at 22:03
    
@phooji: actually it went in another way; I noticed that the post had "strange" # signs (they were the musical ones instead of the programming ones), so I started to edit the question to fix them. Editing I noticed that the code was in <pre> blocks with only some angle brackets replaced with &gt; and &lt;; saving the edit the missing brackets came back to life, making the existing answers invalid. :) –  Matteo Italia Mar 11 '11 at 22:03
    
@UncleBens: correct, fixed. –  Matteo Italia Mar 11 '11 at 22:06
    
@Matteo Italia: [htmldecoder badge] –  phooji Mar 11 '11 at 22:09
#include <set>

int main(){

    typedef pair<int, int> pairs; //creating pair as default data type 
    pairs p[5]; //array of pair objects
    for (int i =0; i<5; i++){
        p[i].first= (i+1)*10; //inserting first element of pair
        p[i].second = (i+1); //inserting first element of pair
    }
    set<pairs> s;   //set to sort pair
    set<pairs> :: iterator it; //iterator to manipulate set

    for (int i =0; i<5; i++){
        s.insert(p[i]); //inserting pair object in set
    }

    for (it = s.begin(); it!=s.end(); it++){
        pairs m = *it; // returns pair to m

    cout<<m.first<<" "<<m.second<<endl; //showing pair elements
    }
    return 0;
}
share|improve this answer

You did not specify what's the type of the elements of the set and pair are going to be.

Changing the lines

typedef pair Point to typedef pair<A, B> Point and typedef set List to typedef set<Point> List should fix your problem.

One pedantic comment: Naming a set as List kind of misleads when you read the code.

share|improve this answer
    
Aaand... maybe also define Point properly? –  phooji Mar 11 '11 at 21:41
    
@phooji: Thanks for pointing it out. Updated my answer. –  yasouser Mar 11 '11 at 21:46

For any user type, that is being stored in an associative container like set/map the type definition must provide ' < ' operation on it.

share|improve this answer
    
Your answer was already mentioned elsewhere on this page. –  phooji Mar 11 '11 at 23:47

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